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Time-Resolved Ultrafast Excitation Dynamics in the B850 Light-Harvesting Antenna from Density Functional Theory

Title data

Trepl, Thomas ; Schelter, Ingo ; Kümmel, Stephan:
Time-Resolved Ultrafast Excitation Dynamics in the B850 Light-Harvesting Antenna from Density Functional Theory.
In: The Journal of Physical Chemistry Letters. Vol. 16 (2025) . - pp. 10891-10898.
ISSN 1948-7185
DOI: https://doi.org/10.1021/acs.jpclett.5c02108

Project information

Project title:
Project's official title
Project's id
Biological Physics
No information
Solar Technologies go Hybrid (SolTech)
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ELTRANS
b163cb
Linux-Cluster zum wissenschaftlichen Hochleistungsrechnen
422127126

Project financing: Bayerisches Staatsministerium für Wissenschaft, Forschung und Kunst
Elitenetzwerk Bayern
Erlangen National High Performance Computing Center (NHR@FAU)
Bayreuth Centre for High Performance Computing

Abstract in another language

Antenna complexes absorb sunlight and transfer the harvested energy with remarkable quantum efficiency. In spectroscopic experiments, they are typically excited with laser pulses that differ substantially from sunlight. Using density functional theory calculations in real time, we reveal the excitation dynamics that results in the B850 antenna ring of the purple bacterium Rhodoblastus acidophilus upon excitation by a short, strong pulse as typically used in experiments. The pulse dominantly triggers the exciton modes that are also the most relevant ones in the natural process. Quantum mechanical interference patterns noticeably influence the electronic density distribution after about 40 fs, and on the same time scale, the effects of nuclear motion start to have a noticeable influence on the excitation dynamics. About 20 fs after the laser peak, the B850 ring transitions into dynamics in which the excitation energy is mostly localized on segments that comprise just a few bacteriochlorophyll molecules.

Further data

Item Type: Article in a journal
Refereed: Yes
Institutions of the University: Faculties > Faculty of Mathematics, Physics und Computer Science > Department of Physics > Chair Theoretical Physics IV > Chair Theoretical Physics IV - Univ.-Prof. Dr. Stephan Kümmel
Result of work at the UBT: Yes
DDC Subjects: 500 Science > 530 Physics
Date Deposited: 14 Oct 2025 06:11
Last Modified: 14 Oct 2025 06:12
URI: https://eref.uni-bayreuth.de/id/eprint/94893